Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic Hyperthermia Performance

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Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Nanomaterials, Free Full-Text
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Applications of Transition Metal⁃doped Iron⁃based Nanoparticles in
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
PDF] Pushing up the magnetisation values for iron oxide
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Enhanced Toxic Dye Degradation Using Single Crystal Zn-doped Fe3O4
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Left Panel: PIXE spectra of all samples showing the pertinent
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Applied Sciences, Free Full-Text
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Pharmaceutics, Free Full-Text
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Pharmaceutics, Free Full-Text
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Nanomaterials, Free Full-Text
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Summary of precursor concentrations used for each sample
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Enhanced Toxic Dye Degradation Using Single Crystal Zn-doped Fe3O4
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
TGA curves of Co x _t phases for different (a) reflux times and (b
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and
Shaping Up Zn-Doped Magnetite Nanoparticles from Mono- and Bimetallic  Oleates: The Impact of Zn Content, Fe Vacancies, and Morphology on Magnetic  Hyperthermia Performance
TGA (a) and DSC (b) curves of FeOl, ZnOl, and their mixture (x
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